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Biology subjects

Mathew, I. E.

Publications and source records attributed to Mathew, I. E..

2 recordsLinked to original sources

Decoding Rice Seed Storage Proteins: From Gene Identification to Structural Prediction

Rice seed storage proteins (SSPs) serve as the primary source of dietary protein, energy, and nutrition; however, our understanding of these proteins remains limited, hindering efforts aimed at enhancing grain nutritional quality. To address this, we conducted a comprehensive genome-wide analysis of rice SSPs, encompassing phylogenetic relationships, domain and motif characterization, promoter cis-element mapping, expression profiling, and 3D structural modeling. Through homology- and domain-based searches, we identified 65 SSP-encoding genes, including 19 previously uncharacterized members. Phylogenetic analysis and domain comparisons revealed evolutionary proximity between albumins and prolamins; and between globulins and glutelins. Albumins, glutelins and prolamins clustered tandemly implying that duplication has driven SSP expansion. Transcriptomic evidence indicated that albumins, globulins, and glutelins were transcriptionally active from S2 seed development stage, whereas prolamins initiated expression from S3 stage. Promoter analysis revealed several seed-specific cis-regulatory elements, with CAATBOX1, EBOXBNNAPA, and DOFCOREZM being the most prevalent. Structural modeling showed that albumins and prolamins predominantly adopted -helical conformations, whereas globulins and glutelins were enriched in {beta}-strands and coils. This integrated analysis offers valuable insights into the classification, evolution, regulation, and structure of rice SSPs, providing a foundational resource for advancing grain nutritional improvement strategies.

plant biology↗

Epigenetic and Signaling Determinants of Blood-Brain Barrier-Regulatory Genetic Networks

The blood-brain barrier (BBB) controls the movement of molecules into and out of the central nervous system (CNS). Since a functional BBB forms by mouse embryonic day E15.5, we reasoned that gene cohorts expressed in CNS endothelial cells (EC) at E13.5 contribute to BBB formation. In contrast, adult gene signatures reflect BBB maintenance mechanisms. Supporting this hypothesis, transcriptomic analysis revealed distinct cohorts of EC genes involved in BBB formation and maintenance. Here, we demonstrate that epigenetic regulators histone deacetylase 2 (HDAC2) and polycomb repressive complex 2 (PRC2) control EC gene expression for BBB development and prevent Wnt/{beta}-catenin (Wnt) target genes from being expressed in adult CNS ECs. Low Wnt activity during development modifies BBB genes epigenetically for the formation of functional BBB. As a Class-I HDAC inhibitor induces adult CNS ECs to regain Wnt activity and BBB genetic signatures that support BBB formation, our results inform strategies to promote BBB repair.

neuroscience↗